PNEUMATIC TIRE COMPRISING REINFORCING ELEMENTS IN THE FORM OF MULTI-LAYER TAPES
20180207987 ยท 2018-07-26
Assignee
Inventors
- AUGUSTIN BOSQUET (Clermont-Ferrand, FR)
- Jacky Pineau (Clermont-Ferrand, FR)
- THOMAS GUY (Clermont-Ferrand, FR)
- CHRISTOPHE LE CLERC (Clermont-Ferrand, FR)
- Anne-Lise Thuilliez (Clermont-Ferrand, FR)
Cpc classification
B60C9/005
PERFORMING OPERATIONS; TRANSPORTING
B60C9/0042
PERFORMING OPERATIONS; TRANSPORTING
B60C2009/2242
PERFORMING OPERATIONS; TRANSPORTING
B60C9/0064
PERFORMING OPERATIONS; TRANSPORTING
B60C9/2204
PERFORMING OPERATIONS; TRANSPORTING
B60C2009/2214
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
Tire (1) comprising a carcass ply (2) that connects two beads (5) by way of two sidewalls (3), said carcass ply (2) being surmounted radially on the outside by a crown reinforcing zone (10) comprising a plurality of reinforcing strips (12, 14) disposed in at least two layers and coated in an elastomeric composition (13, 15), the mean overlap between the strips of the two layers being greater than 40%, the reinforcing strips (12, 14) being made of a thermoplastic film having a modulus greater than 0.9 GPa and preferably greater than 2 GPa in the main direction and in the transverse direction.
Claims
1-10. (canceled)
11. A tire comprising: a carcass ply; two beads; two sidewalls; a tread; and a crown reinforcing zone, wherein the carcass ply connects the two beads by way of the two sidewalls, wherein the crown reinforcing zone is positioned radially external to the carcass ply and radially internal to the tread, wherein the crown reinforcing zone includes a plurality of reinforcing strips disposed in at least a first layer and a second layer such that: the first layer is positioned radially internal to the second layer, the reinforcing strips of the first layer and second layers are disposed in a substantially circumferential direction, with the reinforcing strips of the first layer being disposed in a staggered manner relative to the reinforcing strips of the second layer, wherein the reinforcing strips are coated in an elastomeric composition, wherein a mean overlap between the reinforcing strips of the first and second layers is greater than 40%, and wherein the reinforcing strips are made of a thermoplastic film having a modulus greater than 0.9 GPa in a main direction and in a transverse direction.
12. The tire according to claim 11, wherein the modulus of the thermoplastic film is greater than 2 GPa.
13. The tire according to claim 11, wherein an aspect ratio of the thermoplastic film is greater than or equal to 5.
14. The tire according to claim 11, wherein the thermoplastic film is made of: a thermally stabilized, biaxially drawn polyester, or a thermally stabilized, monoaxially drawn polyester, or a polyamide.
15. The tire according to claim 11, wherein the reinforcing strips are integrated in a matrix made of an elastomeric matrix mixture.
16. The tire according to claim 15, wherein the elastomeric matrix mixture is a diene elastomeric mixture.
17. The tire according to claim 15, wherein the elastomeric matrix mixture has a modulus at 10% elongation in a range of from 3 MPa to 20 MPa.
15. The tire according to claim 15, wherein the elastomeric matrix mixture has a modulus at 10% elongation of greater than 20 MPa.
19. The tire according to claim 15, wherein the matrix includes circumferential filamentary reinforcing elements integrated therein.
20. The tire according to claim 11, wherein circumferential filamentary reinforcing elements are integrated in the thermoplastic film forming the reinforcing strips.
21. The tire according to claim 11, wherein the reinforcing strips are composite strips, wherein each composite strip includes: a strip of thermoplastic film, an alignment of reinforcing threads arranged in a vicinity of the strip of thermoplastic film, and a matrix of an elastomeric mixture into which the strip of thermoplastic film and the alignment of reinforcing threads are integrated.
22. The tire according to claim 21, wherein the elastomeric mixture is a diene elastomeric mixture.
23. The tire according to claim 15, wherein an interface between the reinforcing strips and the elastomeric matrix mixture is adhesive.
Description
DESCRIPTION OF THE FIGURES
[0031] All the embodiment details are given in the description which follows, which is supplemented by
[0032]
[0033]
[0034]
[0035]
[0036]
[0037]
[0038]
[0039]
[0040]
[0041]
[0042]
[0043]
DETAILED DESCRIPTION OF THE INVENTION
Definitions
[0044] In the present document, the expression overlap of the strips means an arrangement in which the strips of a radially outer layer overlap the strips of the radially inner layer, that is to say that the projection in the radial direction of one strip onto the strip at a lower level is not zero. The percentage of overlap may vary depending on the embodiment. This overlap forms a linkage between the layers, creating cohesion of the whole of the reinforcing zone of the crown. This linkage allows in particular transmission of shear forces between the layers.
A longitudinal direction or circumferential direction means a direction which corresponds to the periphery of the tire and which is defined by the direction in which the tire rolls.
An axial direction means a direction parallel to the rolling axis of the tire.
The expression Shore A hardness means the hardness of the compositions after curing, which is assessed in accordance with the ASTM D 2240-86 standard.
A tire means all types of resilient tread, whether or not it is subjected to an internal pressure.
The tread of a tire means a quantity of elastomeric mixture delimited by lateral surfaces and by two main surfaces, one of which is intended to come into contact with a road surface when the tire is being driven on.
The sidewall of a tire means a lateral surface of the tire, said surface being disposed between the tread of the tire and a bead of this tire.
The bead of a tire means a part of the tire that is intended to be seated on a wheel rim.
In the present document, a carcass, or carcass ply, means a reinforcing structure for a tire in the form of a layer made up of a matrix of elastomeric material in which filaments or threads, generally textile, are arranged in a substantially parallel and longitudinal alignment. The carcass ply is advantageously manufactured flat, in great lengths, then cut to the appropriate dimensions for the manufacture of a tire to which the carcass ply is suited.
[0045] The nominal secant moduli (or apparent stress, in MPa) are measured in second elongation (i.e. after an accommodation cycle at the extension rate provided for the measurement itself) at 10% elongation (denoted MA 10) and at 100% elongation (denoted MA 100) at 23 C.2 C., and under normal hygrometry conditions.
[0046]
[0047]
Embodiments of the Strips
[0048]
[0049] In the exemplary embodiment in
[0050] The exemplary embodiment in
[0051] In a variant, the starting and end points of the layers may optionally be the same in order to ensure a certain uniformity.
[0052]
[0053]
[0054]
Composite Strips
[0055] A second embodiment of the strips is presented with regard to
[0056]
[0057]
[0058] The composite strips make it possible to simplify the steps of manufacturing the crown zone of the tire. By altering only the type of strip, without changing the other architectural elements of the tire, the composite strips make it possible to vary the characteristics of the crown zone depending on needs, providing greater flexibility in the design of tires.
[0059] For each of the abovementioned embodiments, different parameters can be altered, such as the relative width of the constituent elements, different widths in different layers, the thicknesses of the components, the number of alignments of strips, which may be greater than two, in particular for specific tires such as for heavy-duty vehicles, all-terrain vehicles or for aircraft.
Constituent Elements and Materials
[0060] The thermoplastic film of the reinforcing strips 12 is advantageously produced with the aid of materials selected from the following: thermally stabilized biaxially or monoaxially drawn polyester, polyamide (for example nylon 6.6). In a variant, these materials can be loaded with isotropic or anisotropic inclusions or inclusions of fibrillar form.
[0061] The strips 12 of thermoplastic film have a ratio between the dimensions length/width and width/thickness of greater than or equal to 5. The thermoplastic film has a modulus in the main direction (corresponding to the circumferential direction of the tire) and the transverse direction of greater than 0.9 GPa and preferably greater than 2 GPa.
[0062] The matrix 13 or 15 in which the strips 12 or 14 are integrated is made up of an elastomeric mixture, preferably a diene elastomeric mixture, having a modulus at 10% elongation that is conventional (typically between 3 and 20 MPa), or preferably stiff (that is to say greater than 20 MPa). A suitable adhesive system according to the nature of the reinforcing elements and the mixtures can be used in order to obtain the necessary cohesion. This adhesive system is obtained for example by physical or chemical preparation or activation of the surfaces and then by using an adhesive.
[0063] The reinforcing cords 11 are made up of materials selected from the following: aramid, polyester (PET, PEN, PTT), nylon, rayon, polyketone, metal thread or cord, or composite thread of cord (glass or carbon with resin), or a hybrid reinforcing element made up of a combination of the above materials.
[0064] Table 1 below illustrates an example of results obtained using architectures according to the features of the invention. At size 175/65R14, a reference with a crown having two crown plies and a layer of nylon threads oriented at 0 is compared with a variant within the scope of the invention that is made of two layers of PET strips with a width of 15 mm and a thickness of 0.5 mm, laid in staggered rows. Each strip is separated from its neighbour by 1 mm. A diene mixture with a thickness of 0.3 mm separates the two layers of PET strip, this embodiment also being supplemented by a 0 PET 4403 thread (variant 1) or an aramid thread (variant 2).
TABLE-US-00001 TABLE 1 comparison of masses, cornering stiffness and rolling resistance for tires according to the invention, with reference to a control tire of conventional architecture. D(Z) at 0.8ZETRTO and Mass 2.4 bar RRt Reference 100% Variant 1 270 g/ref 108% 0.55 kg/T/ref Variant 2 450 g/ref 108% 0.35 kg/T/ref
[0065] Significant improvements in mass and rolling resistance obtained with the embodiments according to the invention are observed.
REFERENCE NUMERALS EMPLOYED IN THE FIGURES
[0066] 1 Tire
[0067] 2 Carcass
[0068] 3 Sidewall
[0069] 4 Crown
[0070] 5 Beads
[0071] 6 Tread
[0072] 7 Bead wires
[0073] 8 Sealing layer
[0074] 10 Crown reinforcing element
[0075] 11 Reinforcing thread or cord
[0076] 12 Reinforcing strip made of thermoplastic film
[0077] 13 Matrix (elastomer mixture, preferably diene elastomer mixture)
[0078] 14 Composite reinforcing strip (thermoplastic film and reinforcing threads)
[0079] 15 Matrix (elastomer mixture, preferably diene elastomer mixture)
[0080] 20 Crossed triangulation layer
[0081] 21 Crossed triangulation layer
[0082] 22 Belt